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Prolyl 3-hydroxylation is a rare collagen type I post translational modification in fibrillar collagens. The primary 3Hyp substrate sites in type I collagen are targeted by an endoplasmic reticulum (ER) complex composed by cartilage associated protein (CRTAP), prolyl 3-hydroxylase 1 (P3H1) and prolyl cis/trans isomerase B, whose mutations cause recessive forms of osteogenesis imperfecta with impaired levels of α1(I)3Hyp986. The absence of collagen type I 3Hyp in wild type zebrafish provides the unique opportunity to clarify the role of the complex in vertebrate. Zebrafish knock outs for crtap and p3h1 were generated by CRISPR/Cas9. Mutant fish have the typical OI patients' reduced size, body disproportion and altered mineralization. Vertebral body fusions, deformities and fractures are accompanied to reduced size, thickness and bone volume. Intracellularly, collagen type I is overmodified, and partially retained causing enlarged ER cisternae. In the extracellular matrix the abnormal collagen type I assembles in disorganized fibers characterized by altered diameter. The data support the defective chaperone role of the 3-hydroxylation complex as the primary cause of the skeletal phenotype.

Original publication

DOI

10.1016/j.matbio.2020.03.004

Type

Journal article

Journal

Matrix Biol

Publication Date

08/2020

Volume

90

Pages

40 - 60

Keywords

Cartilage associated protein, Collagen type I, Prolyl 3-hydroxylase, Prolyl 3-hydroxylation complex, Recessive osteogenesis imperfecta, Zebrafish skeletal disease models, Animals, CRISPR-Cas Systems, Collagen Type I, Collagen Type II, Cyclophilins, Disease Models, Animal, Extracellular Matrix Proteins, Gene Knockout Techniques, Hydroxylation, Osteogenesis Imperfecta, Phenotype, Prolyl Hydroxylases, Zebrafish, Zebrafish Proteins